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Solar photovoltaic parameter estimation using an improved equilibrium optimizer

机译:使用改进的均衡优化器的太阳能光伏参数估计

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In this paper, a recent optimization algorithm called Equilibrium Optimizer (EO) is first improved using a linear reduction diversity technique (LRD) and local minima elimination method (MEM). The improved EO (IEO) reduces the diversity of the population until enabling them to get better solutions. This method is centered around improving the particles with the worst fitness values within the population by moving them toward the best-so-far solution as an attempt to increase the convergence toward the near-optimal solution. As a side effect, LRD increases the probability of entrapment into local minima if it could not find a better solution. Therefore, another method known as local minima elimination method (MEM) is used to take the current solution either within the boundaries of two particles selected randomly or within the search boundaries of the problem itself. The extensive comparative experiments demonstrate that the proposed IEO is competitive and often superior compared to recent algorithms. We applied the proposed IEO algorithm to R.T.O France commercial solar cells using a single diode model (SDM), the double diode model (DDM), and three photovoltaic (PV) modules in addition to two commercial ones.
机译:在本文中,首先使用线性减少分集技术(LRD)和局部最小消除方法(MEM)来提高称为均衡优化器(EO)的最近优化算法。改进的EO(IEO)减少了人口的多样性,直到使它们能够获得更好的解决方案。通过将它们朝向最佳的解决方案使其朝向最佳解决方案,将该方法以改善群体的最差的健康值改善粒子,以试图增加近乎最佳解决方案的收敛。作为副作用,如果它无法找到更好的解决方案,LRD将增加截留到局部最小值的概率。因此,另一种称为局部最小消除方法(MEM)的方法用于在随机或在问题本身的搜索边界内选择的两个粒子的边界内进行电流溶液。广泛的比较实验表明,与最近的算法相比,所提出的IEO具有竞争力,通常优越。除了两个商业中,我们使用单二极管模型(SDM),双二极管模型(DDM),三个光伏(PV)模块应用于R.T.O法国商业太阳能电池的提出的IEO算法。

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